Analysis and Design of a Pulsed Power Generator for a Low-Energy Magnetic Pulse Welding System

被引:0
|
作者
Kwon, Young-Min [1 ]
Hwang, Min-Wook [1 ]
Ko, Kwang-Cheol [1 ]
机构
[1] Hanyang Univ, Dept Elect Engn, 222 Wangsimni Ro, Seoul 04763, South Korea
关键词
fast rise time; high induced current; magnetic pulse welding; pulse forming network; pulsed power supply; JOINTS;
D O I
10.3390/electronics12244921
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Magnetic pulse welding (MPW) is a joining method that uses Lorentz force generated from an electromagnetic field. This method not only has the advantage of not causing thermal deformation of the material and no by-products compared to the method of joining by melting by heat but also enables the joining of dissimilar metals rather than the joining of the same metal. Joining dissimilar metals can reduce the weight of mechanical devices and apply them to various fields. Recent research on MPW has focused on the characteristics of bonding according to the material or structure of metal rather than on pulse power research that generates the main factor of operation. However, in the operation of MPW, a Lorentz force is generated by the induced current caused by the electromotive force created in the flyer tube and the external magnetic field in the actuator. Therefore, it is necessary to analyze and optimize the pulse power to improve reliability and to miniaturize the system to expand the MPW utilization range. In this paper, we analyzed MPW operation according to a section of the pulse power output waveform. A condition for obtaining the maximum current in the flyer tube was proposed, and a plateau-shaped waveform was derived as an ideal output waveform capable of maintaining the Lorentz force. Through analysis, the proposed pulse power device is designed as a pulse-forming network (PFN) that generates a plateau output waveform. The design specification is that the circuit of PFN (type E) is designed so that the output waveform is pulse width 10 (mu s) and the maximum output current is 100 (kA), and it is verified by simulation.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] DESIGN STUDY OF LOW-ENERGY AND HIGH-POWER ACCELERATOR
    HOURST, JB
    ROCHE, M
    NUCLEAR INSTRUMENTS & METHODS, 1971, 92 (04): : 589 - &
  • [22] Design of a Novel Pulsed Power System for Repetitive Pulsed High Magnetic Fields
    Xu, Yun
    Yang, Rui
    Xiang, Yingmeng
    Ding, Hongfa
    Ding, Tonghai
    Li, Liang
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2012, 22 (03)
  • [23] Low-Energy Pattern Generator for Random Testing
    Bhattacharya, Bhargab B.
    Seth, Sharad C.
    Zhang, Sheng
    ALGORITHMS, ARCHITECTURES AND INFORMATION SYSTEMS SECURITY, 2009, 3 : 117 - 138
  • [24] Low-Energy Magnetic Radiation
    Frauendorf, S.
    Beard, M.
    Mumpower, M.
    Schwengner, R.
    Wimmer, K.
    CGS15 - CAPTURE GAMMA-RAY SPECTROSCOPY AND RELATED TOPICS, 2015, 93
  • [25] VERSATILE PULSE GENERATOR SYSTEM FOR PULSED NMR APPLICATIONS
    RAMADAN, B
    TWARD, E
    REVIEW OF SCIENTIFIC INSTRUMENTS, 1971, 42 (11): : 1618 - &
  • [26] Analysis and design of low-energy flip-flops
    Markovic, D
    Nikolic, B
    Brodersen, RW
    ISLPED'01: PROCEEDINGS OF THE 2001 INTERNATIONAL SYMPOSIUM ON LOWPOWER ELECTRONICS AND DESIGN, 2001, : 52 - 55
  • [27] ENERGY + LOW-ENERGY BUILDING DESIGN
    不详
    RIBA JOURNAL-ROYAL INSTITUTE OF BRITISH ARCHITECTS, 1981, 88 (12): : 69 - 69
  • [28] PULSE WIDTH LENGTHENING TECHNIQUE FOR COMPACT PULSED POWER GENERATOR
    Zhang, Zicheng
    Hou, Yanpan
    Liu, Hongwei
    Yang, Hanwu
    Zhang, Jiande
    2017 IEEE 21ST INTERNATIONAL CONFERENCE ON PULSED POWER (PPC), 2017,
  • [29] Design, modelling and experimental analysis of a piezoelectric wind energy generator for low-power applications
    Paulo e Silva, Alan Goncalves
    Basilio Sobrinho, Jose Marques
    Souto, Cicero da Rocha
    Ries, Andreas
    de Castro, Alexandre Cezar
    SENSORS AND ACTUATORS A-PHYSICAL, 2021, 317
  • [30] A pulsed high-voltage decelerator system to deliver low-energy antiprotons
    Husson, A.
    Kim, B. H.
    Welker, A.
    Charlton, M.
    Choi, J. J.
    Chung, M.
    Clade, P.
    Comini, P.
    Crepin, P. -P.
    Crivelli, P.
    Dalkarov, O.
    Debu, P.
    Dodd, L.
    Douillet, A.
    Guellati-Khelifa, S.
    Garroum, N.
    Hervieux, P. -A.
    Hilico, L.
    Indelicato, P.
    Janka, G.
    Jonsell, S.
    Karr, J. -P.
    Kim, E. -S.
    Kim, S. K.
    Ko, Y.
    Kosinski, T.
    Kuroda, N.
    Latacz, B.
    Lee, H.
    Lee, J.
    Leite, A. M. M.
    Leveque, K.
    Lim, E.
    Liszkay, L.
    Lotrus, P.
    Lunney, D.
    Manfredi, G.
    Mansoulie, B.
    Matusiak, M.
    Mornacchi, G.
    Nesvizhevsky, V. V.
    Nez, F.
    Niang, S.
    Nishi, R.
    Nourbaksh, S.
    Park, K. H.
    Paul, N.
    Perez, P.
    Procureur, S.
    Radics, B.
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2021, 1002